TY - JOUR
T1 - An alternative explanation of back-relaxation in ionic polymer metal composites
AU - Porfiri, Maurizio
AU - Leronni, Alessandro
AU - Bardella, Lorenzo
PY - 2017/5/1
Y1 - 2017/5/1
N2 - The phenomenon of back-relaxation in ionic polymer metal composites (IPMCs) has attracted the interest of the scientific community for two decades, but its physical origins largely remain elusive. Here, we propose an explanation of this phenomenon based on Maxwell stress. From first principles, we demonstrate that IPMC actuation is controlled by the nonlinear interplay between osmotic and electrostatic phenomena. While osmotic pressure tends to produce a rapid bending toward the anode, Maxwell stress generates a slow relaxation toward the cathode. The relative weight of these phenomena is determined by the applied voltage. At voltage levels comparable to the thermal voltage, IPMC actuation is dominated by osmotic effects. As the applied voltage is increased, Maxwell stress overcomes the osmotic pressure, leading to back-relaxation.
AB - The phenomenon of back-relaxation in ionic polymer metal composites (IPMCs) has attracted the interest of the scientific community for two decades, but its physical origins largely remain elusive. Here, we propose an explanation of this phenomenon based on Maxwell stress. From first principles, we demonstrate that IPMC actuation is controlled by the nonlinear interplay between osmotic and electrostatic phenomena. While osmotic pressure tends to produce a rapid bending toward the anode, Maxwell stress generates a slow relaxation toward the cathode. The relative weight of these phenomena is determined by the applied voltage. At voltage levels comparable to the thermal voltage, IPMC actuation is dominated by osmotic effects. As the applied voltage is increased, Maxwell stress overcomes the osmotic pressure, leading to back-relaxation.
UR - http://dx.doi.org/10.1016/j.eml.2017.01.009
U2 - 10.1016/j.eml.2017.01.009
DO - 10.1016/j.eml.2017.01.009
M3 - Article
SN - 2352-4316
VL - 13
SP - 78
EP - 83
JO - Extreme Mechanics Letters
JF - Extreme Mechanics Letters
ER -